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I wrote the follwing function:

let str2lst str =
    let rec f s acc =
      match s with
        | "" -> acc
        | _  -> f (s.Substring 1) (s.[0]::acc)
    f str []

How can I know if the F# compiler turned it into a loop? Is there a way to find out without using Reflector (I have no experience with Reflector and I Don't know C#)?

Edit: Also, is it possible to write a tail recursive function without using an inner function, or is it necessary for the loop to reside in?

Also, Is there a function in F# std lib to run a given function a number of times, each time giving it the last output as input? Lets say I have a string, I want to run a function over the string then run it again over the resultant string and so on...

1

3 Answers 3

24

Edit: Since F# 8 there is a way with the [<TailCall>] attribute, see this answer: https://stackoverflow.com/a/77532717/969070

Original answer:

Unfortunately there is no trivial way.

It is not too hard to read the source code and use the types and determine whether something is a tail call by inspection (is it 'the last thing', and not in a 'try' block), but people second-guess themselves and make mistakes. There's no simple automated way (other than e.g. inspecting the generated code).

Of course, you can just try your function on a large piece of test data and see if it blows up or not.

The F# compiler will generate .tail IL instructions for all tail calls (unless the compiler flags to turn them off is used - used for when you want to keep stack frames for debugging), with the exception that directly tail-recursive functions will be optimized into loops. (EDIT: I think nowadays the F# compiler also fails to emit .tail in cases where it can prove there are no recursive loops through this call site; this is an optimization given that the .tail opcode is a little slower on many platforms.)

'tailcall' is a reserved keyword, with the idea that a future version of F# may allow you to write e.g.

tailcall func args

and then get a warning/error if it's not a tail call.

Only functions that are not naturally tail-recursive (and thus need an extra accumulator parameter) will 'force' you into the 'inner function' idiom.

Here's a code sample of what you asked:

let rec nTimes n f x =
    if n = 0 then
        x
    else
        nTimes (n-1) f (f x)

let r = nTimes 3 (fun s -> s ^ " is a rose") "A rose"
printfn "%s" r
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  • "tailcall" is interesting, as it has you specify the site of call instead of what may be a more useful "tailrec" declaration on the whole function. Can you have a "partially tail-recursive" function? Jun 5, 2010 at 14:22
  • 3
    @StephenSwensen You absolutely can. Control flow branches could lead to an alternative between a tail call and a call that isn't a tail call, and you may only want to check the one that actually is a tail call at compile time. let rec f x = if x > 0 then f(1+x) else 0 + f(1+x) illustrates the concept, although obviously it wouldn't terminate. Jun 10, 2011 at 2:13
4

The compiler can check this for you, as of F# 8! Mark the function with TailCallAttribute, and you'll get a warning if you provide an implementation that isn't tail recursive.

For example, this code:

[<TailCall>]
let rec fibNaive n =
    if n <= 1 then n
    else fibNaive (n - 1) + fibNaive (n - 2)

emits two instances of Warning FS3569 : The member or function 'fibNaive' has the 'TailCallAttribute' attribute, but is not being used in a tail recursive way. (one for each recursive call)

While this code emits no warnings:

[<TailCall>]
let fibFast n =
    let rec fibFast x y n =
        match n with
        | _ when n < 1 -> x
        | 1 -> y
        | _ -> fibFast y (x + y) (n - 1)
    fibFast 0 1 n

For bonus points, it can be a good idea to turn this into an error, by adding <WarningsAsErrors>FS3569</WarningsAsErrors> to your fsproj.

2
  • It seems like your check does nothing in the second case. E.g. ` [<TailCall>] let factorial n = let rec factorialNaive m = if m < 1 then 1 else (m * factorialNaive (m-1)) factorialNaive n ` does not give a warning. There's also no way to attach the attribute to the inner function factorialNaive that I can see.
    – user22509497
    Apr 30 at 8:25
  • Also I just learned that posting code blocks in comments does not work. Hopefully it's simple enough that it's clear what I was doing.
    – user22509497
    Apr 30 at 8:26
3

I like the rule of thumb Paul Graham formulates in On Lisp: if there is work left to do, e.g. manipulating the recursive call output, then the call is not tail recursive.

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